Matches in SemOpenAlex for { <https://semopenalex.org/work/W2009835594> ?p ?o ?g. }
- W2009835594 endingPage "416" @default.
- W2009835594 startingPage "393" @default.
- W2009835594 abstract "We present a detailed investigation of the collisional behaviour of the optically metastable calcium atoms, Ca(4s4p(3PJ)) (1.888 eV) and Ca(4s3d(1D2)) (2.709 eV), with N2O. These metastable states were generated directly by pulsed dye-laser excitation at λ = 657.3 and 457.5 nm respectively, and monitored photoelectrically in the time-resolved mode by boxcar integration using the forbidden atomic emission at these resonance wavelengths. The removal of the two atomic states by N2O has been characterised across the temperature range 725–1100 K, yielding the Arrhenius forms: k(Ca(43PJ) + N2O) = (3.5+8.5−2.5) × 10−10 exp(−36.1 ± 11.6 kJ mol−1/RT) cm3 molecule−1 s−1; k(Ca(41D2) + N2O) = (3.8+2.9−1.7) × 10−10 exp(−17.5 ± 3.7 kJ mol−1 / RT) cm3 molecule−1 s−1. At elevated temperatures, the atomic decay profiles included the effects of components due to the collisional removal of Ca(43PJ) and Ca(41D2) by O2 resulting from the thermal decomposition of N2O, which were quantified. The main objective of the present paper concerns the accompanying time-resolved study of molecular chemiluminescence from CaO, involving the monitoring of some forty transitions in different electronic and vibronic states, and characterising the time-resolved molecular emission profiles and relating them quantitatively to parameters describing the atomic emission profiles. The following groups of chemiluminescence transitions were monitored: the CaO “orange arc band” system (nine transitions); the CaO “green arc band” system (two transitions); the CaO(A′1ΠX1Σ+, ν′ = 8–15) band system (twenty-one transitions); the CaO(A1Σ+X1Σ+, Δν = −2 to −9 (eight transitions). The combination of the time dependences of the molecular and atomic emission profiles enabled the production of the emitting molecular states to be ascribed either specifically to direct formation from chemical reaction between Ca(43PJ) and Ca(41D2) with N2O or to EE transfer between these two atomic states and CaO(X1Σ+). The different routes to specific product states of CaO are presented in detail and are found to be in accord with the energetic accessibility of these states and with a correlation diagram connecting the states of Ca + N2O and CaO + N2 constructed on the basis of Cs symmetry on collision and using the weak spin-orbit coupling approximation. For the case of EE transfer, measurement of the vibrational temperature across ν′ = 8–15 in CaO(A′1Π) indicates some degree of vibrational excitation accompanying these processes. Intensity measurements corrected for photomultiplier gain, frequency and Franck-Condon factor yielded estimates of relative populations in the emitting electronic states resulting from these two general routes. Product states arising from direct reaction were found to be in accord with symmetry arguments. Finally, the variation of such corrected molecular emission intensity measurements with temperature yielded results in broad agreement with thermodynamic data." @default.
- W2009835594 created "2016-06-24" @default.
- W2009835594 creator A5064442983 @default.
- W2009835594 creator A5078339555 @default.
- W2009835594 date "1986-11-01" @default.
- W2009835594 modified "2023-10-17" @default.
- W2009835594 title "A study of the collisional quenching of Ca(4s4p(3PJ)) and Ca(4s3d(1D2)) with N2O by time-resolved atomic emission and time-resolved molecular chemiluminescence from CaO" @default.
- W2009835594 cites W1552253914 @default.
- W2009835594 cites W1641849362 @default.
- W2009835594 cites W1930663955 @default.
- W2009835594 cites W1971023972 @default.
- W2009835594 cites W1976213259 @default.
- W2009835594 cites W1978851351 @default.
- W2009835594 cites W1983238842 @default.
- W2009835594 cites W1985393191 @default.
- W2009835594 cites W1992162699 @default.
- W2009835594 cites W1993067351 @default.
- W2009835594 cites W1995373760 @default.
- W2009835594 cites W1999142515 @default.
- W2009835594 cites W2002197654 @default.
- W2009835594 cites W2002479929 @default.
- W2009835594 cites W2003057986 @default.
- W2009835594 cites W2003469184 @default.
- W2009835594 cites W2005082938 @default.
- W2009835594 cites W2007243825 @default.
- W2009835594 cites W2009599146 @default.
- W2009835594 cites W2010121069 @default.
- W2009835594 cites W2010676058 @default.
- W2009835594 cites W2013065155 @default.
- W2009835594 cites W2014220425 @default.
- W2009835594 cites W2018380099 @default.
- W2009835594 cites W2019923466 @default.
- W2009835594 cites W2019938553 @default.
- W2009835594 cites W2027664086 @default.
- W2009835594 cites W2032190953 @default.
- W2009835594 cites W2037566345 @default.
- W2009835594 cites W2042549662 @default.
- W2009835594 cites W2048397241 @default.
- W2009835594 cites W2049213678 @default.
- W2009835594 cites W2049281451 @default.
- W2009835594 cites W2052163947 @default.
- W2009835594 cites W2054603858 @default.
- W2009835594 cites W2055415944 @default.
- W2009835594 cites W2056438418 @default.
- W2009835594 cites W2057591833 @default.
- W2009835594 cites W2061470657 @default.
- W2009835594 cites W2063783381 @default.
- W2009835594 cites W2067504725 @default.
- W2009835594 cites W2070847095 @default.
- W2009835594 cites W2070902050 @default.
- W2009835594 cites W2072339367 @default.
- W2009835594 cites W2072986298 @default.
- W2009835594 cites W2075406700 @default.
- W2009835594 cites W2079539076 @default.
- W2009835594 cites W2080249995 @default.
- W2009835594 cites W2080594111 @default.
- W2009835594 cites W2081505389 @default.
- W2009835594 cites W2084921120 @default.
- W2009835594 cites W2090020772 @default.
- W2009835594 cites W2091608856 @default.
- W2009835594 cites W2095132910 @default.
- W2009835594 cites W2110697579 @default.
- W2009835594 cites W2148483513 @default.
- W2009835594 cites W2169996418 @default.
- W2009835594 doi "https://doi.org/10.1016/0301-0104(86)87068-9" @default.
- W2009835594 hasPublicationYear "1986" @default.
- W2009835594 type Work @default.
- W2009835594 sameAs 2009835594 @default.
- W2009835594 citedByCount "13" @default.
- W2009835594 crossrefType "journal-article" @default.
- W2009835594 hasAuthorship W2009835594A5064442983 @default.
- W2009835594 hasAuthorship W2009835594A5078339555 @default.
- W2009835594 hasConcept C113196181 @default.
- W2009835594 hasConcept C118495887 @default.
- W2009835594 hasConcept C121332964 @default.
- W2009835594 hasConcept C1276947 @default.
- W2009835594 hasConcept C145802702 @default.
- W2009835594 hasConcept C147789679 @default.
- W2009835594 hasConcept C178790620 @default.
- W2009835594 hasConcept C181500209 @default.
- W2009835594 hasConcept C184779094 @default.
- W2009835594 hasConcept C185592680 @default.
- W2009835594 hasConcept C43617362 @default.
- W2009835594 hasConcept C4839761 @default.
- W2009835594 hasConcept C62520636 @default.
- W2009835594 hasConcept C82706917 @default.
- W2009835594 hasConcept C86183883 @default.
- W2009835594 hasConcept C89464430 @default.
- W2009835594 hasConcept C95121573 @default.
- W2009835594 hasConcept C95974651 @default.
- W2009835594 hasConcept C96141758 @default.
- W2009835594 hasConceptScore W2009835594C113196181 @default.
- W2009835594 hasConceptScore W2009835594C118495887 @default.
- W2009835594 hasConceptScore W2009835594C121332964 @default.
- W2009835594 hasConceptScore W2009835594C1276947 @default.
- W2009835594 hasConceptScore W2009835594C145802702 @default.
- W2009835594 hasConceptScore W2009835594C147789679 @default.
- W2009835594 hasConceptScore W2009835594C178790620 @default.